Related Experiment Video
Updated: May 19, 2026

Ambulatory ECG Recording in Mice
Published on: May 27, 2010
Cardiac ryanodine receptors control heart rate and rhythmicity in adult mice
Michael J Bround1, Parisa Asghari, Rich B Wambolt
1Cardiovascular Research Group, Life Sciences Institute, University of British Columbia, 5358 Life Sciences Building, 2350 Health Sciences Mall, Vancouver, BC, Canada V6T 1Z3.
Aims:
The molecular mechanisms controlling heart function and rhythmicity are incompletely understood. While it is widely accepted that the type 2 ryanodine receptor (Ryr2) is the major Ca(2+) release channel in excitation-contraction coupling, the role of these channels in setting a consistent beating rate remains controversial. Gain-of-function RYR2 mutations in humans and genetically engineered mouse models are known to cause Ca(2+) leak, arrhythmias, and sudden cardiac death. Embryonic stem-cell derived cardiomyocytes lacking Ryr2 display slower beating rates, but no supporting in vivo evidence has been presented. The aim of the present study was to test the hypothesis that RYR2 loss-of-function would reduce heart rate and rhythmicity in vivo.
Methods And Results:
We generated inducible, tissue-specific Ryr2 knockout mice with acute ∼50% loss of RYR2 protein in the heart but not in other tissues. Echocardiography, working heart perfusion, and in vivo ECG telemetry demonstrated that deletion of Ryr2 was sufficient to cause bradycardia and arrhythmia. Our results also show that cardiac Ryr2 knockout mice exhibit functional and structural hallmarks of heart failure, including sudden cardiac death.
Conclusion:
These results illustrate that the RYR2 channel plays an essential role in pacing heart rate. Moreover, we find that RYR2 loss-of-function can lead to fatal arrhythmias typically associated with gain-of-function mutations. Given that RYR2 levels can be reduced in pathological conditions, including heart failure and diabetic cardiomyopathy, we predict that RYR2 loss contributes to disease-associated bradycardia, arrhythmia, and sudden death.
Insights
Loss of the ryanodine receptor 2 (RYR2) channel in mice causes slow heart rate and fatal arrhythmias, challenging previous assumptions about its function in cardiac rhythm. This RYR2 loss-of-function leads to sudden cardiac death.
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Cardiac Electrophysiology
Background:
- The precise role of the type 2 ryanodine receptor (RYR2) in regulating heart rate and rhythmicity is not fully understood.
- While RYR2 is known for calcium release in excitation-contraction coupling, its function in pacing remains debated.
- Gain-of-function RYR2 mutations are linked to arrhythmias and sudden cardiac death.
Purpose of the Study:
- To investigate the in vivo effects of RYR2 loss-of-function on heart rate and rhythmicity.
- To test the hypothesis that reduced RYR2 function impairs cardiac pacing and leads to arrhythmias.
Main Methods:
- Generation of inducible, tissue-specific Ryr2 knockout mice with approximately 50% RYR2 protein reduction in the heart.
- Assessment of cardiac function using echocardiography and working heart perfusion.
- In vivo electrocardiogram (ECG) telemetry to monitor heart rate and rhythm.
Main Results:
- Acute deletion of Ryr2 in the heart induced significant bradycardia (slow heart rate) and arrhythmia.
- Cardiac Ryr2 knockout mice displayed hallmarks of heart failure, including structural and functional changes.
- The study documented sudden cardiac death in mice with RYR2 loss-of-function.
Conclusions:
- The RYR2 channel is crucial for maintaining normal heart rate pacing.
- RYR2 loss-of-function can precipitate fatal arrhythmias, similar to those seen with gain-of-function mutations.
- Reduced RYR2 levels in pathological states like heart failure may contribute to bradycardia, arrhythmia, and sudden death.
More Related Videos
09:36Dual-Dye Optical Mapping of Hearts from RyR2R2474S Knock-In Mice of Catecholaminergic Polymorphic Ventricular Tachycardia
Published on: December 22, 2023
09:20Microelectrode Array Recording of Sinoatrial Node Firing Rate to Identify Intrinsic Cardiac Pacemaking Defects in Mice
Published on: July 5, 2021
Related Concept Videos
Regulation of Heart Rates
The SNS increases heart rate through the release of norepinephrine and epinephrine, which act on beta-1 adrenergic receptors in the heart. This action increases the rate of depolarization in the sinoatrial (SA) node, the heart's...
Mechanism of Cardiac Arrhythmias
Electrophysiology of Normal Cardiac Rhythm
Conduction System of the Heart
The pacemaker cells are located in two primary nodes: the sinoatrial (SA) node and the atrioventricular (AV) node. The SA node pacemaker cells can autonomously depolarize, triggering an action potential that leads to the...
Specialized Characteristics of Cardiac Muscles
Cardiac muscle cells are smaller than skeletal muscles, averaging 10–20 mm in diameter and 50–100 mm in length. However, they have large energy demands for continuous contraction and relaxation. This energy is almost exclusively derived from aerobic metabolism of energy reserves in...
Pathophysiology of Cardiac Performance